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Effect of Hydrogen Isotopes on the Fracture Toughness Properties of Types 316L and 304L Stainless Steel Forgings

机译:氢同位素对316L和304L型不锈钢锻件断裂韧性的影响

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Forged stainless steels are commonly used for the containment of hydrogen isotopes and fracture toughness properties are needed for structural integrity assessments. In this study, the effects of hydrogen and tritium precharging on the fracture-toughness properties of Types 316L and 304L stainless steel forgings were measured. The purpose of the study was to evaluate hydrogen and tritium effects on fracture toughness properties of: (1) Type 316 stainless steel stem-shaped and cup shaped forgings; and (2) Type 304L cylindrical block forgings with two different yield strengths. Arc-shaped fracture toughness specimens were cut from the forgings and precharged by exposing the specimens to hydrogen or tritium gas at 623K and 34.5 MPa. Tritium precharged specimens were aged at 193 K for 45 months prior to testing to build-in helium-3 from tritium decay. In the as-received condition, the J-Integral fracture toughness of the stem, cup, and block forgings were very high and exceeded 1200 kJ/m2 on average. The fracture toughness of specimens cut from the low yield strength Type 304L stainless steel block forging had the highest fracture toughness values and Type 316L stainless steel cup forging had the lowest. The reduced fracture toughness values were attributed to the large strain required to produce the cup forging and its high yield strength. Hydrogen precharging reduced the fracture toughness of the stem, cup, and block forgings to values between 34%-51% of a baseline value which was taken to be the fracture toughness value of the low yield strength block forging. Tritium precharging reduced the fracture-toughness values more than hydrogen precharging because of the effects of helium from radioactive decay of tritium. The fracture-toughness properties of tritium-precharged forgings ranged from 12% to 23% of the baseline values. In general, Type 316L stainless steel was more resistant to toughness reductions by hydrogen or tritium (and decay helium) than Type 304L stainless steel. Yield strength had only minor effects on fracture toughness for the precharged steels.
机译:锻造不锈钢通常用于容纳氢同位素,并且断裂韧性需要进行结构完整性评估。在这项研究中,测量了氢和tri的预充对316L和304L型不锈钢锻件的断裂韧性的影响。本研究的目的是评估氢和tri对以下各项的断裂韧性的影响:(1)316型不锈钢杆状和杯状锻件; (2)具有两种不同屈服强度的304L型圆柱块锻件。从锻件上切下弧形断裂韧性试样,并通过将试样暴露在623K和34.5 MPa的氢气或tri气中进行预装。将testing预充电的标本在193 K下老化45个月,然后再测试从decay衰变中嵌入的He-3。在接收状态下,杆,杯和块锻件的J整体断裂韧性非常高,平均超过1200 kJ / m2。从低屈服强度的304L型不锈钢块锻件切下的试样的断裂韧性具有最高的断裂韧性值,而316L型的不锈钢杯锻件具有最低的断裂韧性值。降低的断裂韧性值归因于产生杯锻件所需的大应变及其高屈服强度。氢预充将杆,杯和块锻件的断裂韧性降低到基线值的34%-51%之间的值,该值被视为低屈服强度块锻件的断裂韧性值。由于hydrogen的放射性衰变对氦气的影响,pre预装料比氢预装料更能降低断裂韧性值。预充tri的锻件的断裂韧性为基线值的12%至23%。通常,与304L型不锈钢相比,316L型不锈钢更能抵抗氢或tri(和衰变氦气)引起的韧性降低。屈服强度对预充电钢的断裂韧性影响很小。

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